EP2861724A1 - Transcription factor mediated programming towards megakaryocytes - Google Patents
Transcription factor mediated programming towards megakaryocytesInfo
- Publication number
- EP2861724A1 EP2861724A1 EP13734473.5A EP13734473A EP2861724A1 EP 2861724 A1 EP2861724 A1 EP 2861724A1 EP 13734473 A EP13734473 A EP 13734473A EP 2861724 A1 EP2861724 A1 EP 2861724A1
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- European Patent Office
- Prior art keywords
- cells
- megakaryocyte
- population
- pscs
- transcription factors
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- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
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- C12N—MICROORGANISMS OR ENZYMES; COMPOSITIONS THEREOF; PROPAGATING, PRESERVING, OR MAINTAINING MICROORGANISMS; MUTATION OR GENETIC ENGINEERING; CULTURE MEDIA
- C12N5/00—Undifferentiated human, animal or plant cells, e.g. cell lines; Tissues; Cultivation or maintenance thereof; Culture media therefor
- C12N5/06—Animal cells or tissues; Human cells or tissues
- C12N5/0602—Vertebrate cells
- C12N5/0634—Cells from the blood or the immune system
- C12N5/0644—Platelets; Megakaryocytes
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61K—PREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
- A61K35/00—Medicinal preparations containing materials or reaction products thereof with undetermined constitution
- A61K35/12—Materials from mammals; Compositions comprising non-specified tissues or cells; Compositions comprising non-embryonic stem cells; Genetically modified cells
- A61K35/14—Blood; Artificial blood
- A61K35/19—Platelets; Megacaryocytes
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- C12N2501/00—Active agents used in cell culture processes, e.g. differentation
- C12N2501/10—Growth factors
- C12N2501/115—Basic fibroblast growth factor (bFGF, FGF-2)
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- C12N2501/00—Active agents used in cell culture processes, e.g. differentation
- C12N2501/10—Growth factors
- C12N2501/155—Bone morphogenic proteins [BMP]; Osteogenins; Osteogenic factor; Bone inducing factor
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- C12N2501/00—Active agents used in cell culture processes, e.g. differentation
- C12N2501/50—Cell markers; Cell surface determinants
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- C12—BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
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- C12N2501/00—Active agents used in cell culture processes, e.g. differentation
- C12N2501/60—Transcription factors
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- C—CHEMISTRY; METALLURGY
- C12—BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
- C12N—MICROORGANISMS OR ENZYMES; COMPOSITIONS THEREOF; PROPAGATING, PRESERVING, OR MAINTAINING MICROORGANISMS; MUTATION OR GENETIC ENGINEERING; CULTURE MEDIA
- C12N2506/00—Differentiation of animal cells from one lineage to another; Differentiation of pluripotent cells
- C12N2506/02—Differentiation of animal cells from one lineage to another; Differentiation of pluripotent cells from embryonic cells
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- C—CHEMISTRY; METALLURGY
- C12—BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
- C12N—MICROORGANISMS OR ENZYMES; COMPOSITIONS THEREOF; PROPAGATING, PRESERVING, OR MAINTAINING MICROORGANISMS; MUTATION OR GENETIC ENGINEERING; CULTURE MEDIA
- C12N2506/00—Differentiation of animal cells from one lineage to another; Differentiation of pluripotent cells
- C12N2506/03—Differentiation of animal cells from one lineage to another; Differentiation of pluripotent cells from non-embryonic pluripotent stem cells
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- C—CHEMISTRY; METALLURGY
- C12—BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
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- C12N2830/00—Vector systems having a special element relevant for transcription
- C12N2830/001—Vector systems having a special element relevant for transcription controllable enhancer/promoter combination
- C12N2830/002—Vector systems having a special element relevant for transcription controllable enhancer/promoter combination inducible enhancer/promoter combination, e.g. hypoxia, iron, transcription factor
- C12N2830/003—Vector systems having a special element relevant for transcription controllable enhancer/promoter combination inducible enhancer/promoter combination, e.g. hypoxia, iron, transcription factor tet inducible
Definitions
- This invention relates to the generation of megakaryocyte (MK) lineages from pluripotent stem cells (PSCs).
- MK megakaryocyte
- MK Megakaryocytes
- hESC Human embryonic stem cells
- Human ESCs, iPSCs and other human stem cells may thus offer a valuable option for e -vivo production of biocompatible platelets.
- hPSCs human pluripotent stem cells
- This invention relates to the development of a process for the efficient forward programming of human pluripotent cells into megakaryocyte progenitor cells (MK-FoP) .
- MK-FoP megakaryocyte progenitor cells
- This may be useful, for example, in production of mature megakaryocytes and platelets; the modelling of thrombocytopenia and other platelet-associated
- An aspect of the invention provides a method of forward programming pluripotent cells into megakaryocyte progenitor cells; or producing megakaryocyte progenitor cells; the method comprising;
- PSCs pluripotent stem cells
- TFs transcription factors
- culturing said population of cells iii) culturing said population of cells.
- the combination of transcription factors introduced into the cell population imposes a megakaryocyte progenitor phenotype i.e. one or more cells in the population are forward programmed by the transcription factor combination into megakaryocyte progenitor cells.
- progenitor phenotype as described herein may comprise;
- the population may be cultured under suitable conditio s and for a sufficient period of time, following introduction of the
- transcription factors to allow one or more cells in the population to display a megakaryocyte progenitor phenotype, for example the stable expression of CD61, CD34 and CD41a; and/or the stable expression of CD61, CD235a and CD41a in said cells.
- the megakaryocyte progenitor cells may be maintained in culture, expanded, stored, for example frozen using conventional techniques, or used in therapeutic or other
- Transcription factors are DNA binding proteins which regulate the expression of genes in cells.
- the transcription factors introduced into the PSCs are human transcription factors,
- the combination of transcription factors for programming PSCs to become megakaryocyte progenitors as described herein comprises GATA1, FLU and TALI.
- the amino acid sequences of GATA1, FLU and TALI are readily available on public databases.
- the reference amino acid sequence of human GATA1 (GA A binding protein 1; also known as ERYF1 : Gene ID 2623 ⁇ has the NCBI database entry NP 002040,1 GI : 4503925;
- the reference amino acid sequence of human FLU Friend leukaemia virus integration 1, also known as EWSR1 , SIC-1 or ERGB; Gene ID 2313
- the reference amino acid sequence of human TALI T cell acute lymphocytic leukemia protein 1; Gene No: 6886
- the combination of transcription factors may lack TALI.
- a method of producing mammalian cells with a megakaryocyte progenitor phenotype as described herein may comprise; i) providing a population of isolated pluripotent stem cells iPSCs),
- GATAl, FLU and TALI may be produced using routine recombinant techniques or may be obtained from commercial suppliers (e.g. R&D Systems, Minneapolis, MM, USA) .
- the combination of transcription factors may consist of GATAl, FLI1 and TALI i.e. the only transcription factors in introduced into the PSCs are GATAl, FLU and TALI.
- the combination of transcription factors may consist of GATAl, FLU and TALI, with optionally, one, two, three or more, additional transcription factors.
- additional transcription factors may include one or more of the transcription factors shown in Table 1 or one or more of IKZF1, HOXA5, RU X1, ZFPM2, ZFPM1 and GATA2.
- additional transcription factors may include one or more of ABLIM1 , FHL1, RU X3, NFIC, NFIL3 , VDR, MESP1, BTBD11, APPL2, MICALl , BATF, SCMH1 and MBP, as shown in table 2.
- amino acid sequences of IKZFl, HOXA5 , RUNX1, ZFPM2, ZFPM1 and GATA2 and ABLIM1, FHL1, RUNX3 , NFIC, NFIL3 , VDR, MESP1, BTBD11, APPL2, MICALl, BATF, SCMH1 and MBP are readily available on public databases.
- Suitable transcription factor nucleic acids and proteins may be produced using routine recombinant techniques or obtained from commercial suppliers (e.g. R&D Systems, Minneapolis, MM, USA;
- Suitable transcription factors for use as described herein may comprise the reference database amino sequence or a variant, thereof.
- a suitable variant may have at least 50%, at least 60%, at least 70%, at least 80%, at least 90%, at least 95%, or at least 98% sequence identity to the reference sequence.
- Amino acid sequence identity is generally defined with reference to the algorithm GAP ( GCG Wisconsin Package '114 , Accelrys, San Diego CA) .
- GAP uses the Meedleman & Wunsch algorithm (J. Mol. Biol. (48) : 444- 453 (1970)) to align two complete sequences that maximizes the number of matches and minimizes the number of gaps.
- GAP GAP polypeptide sequence identity
- BLAST Altschul et al . (1990) J. Mol. Biol. 215: 405-410
- FASTA which uses the method of Pearson and Lipman (1988) PNAS USA 85: 2444- 2448
- Smith-Waterman algorithm Smith and Waterman (1981) J. Mol Biol. 147: 195-197
- default parameters e.g. BLAST or TBLASTN (which use the method of Altschul et al . (1990) J. Mol. Biol. 215: 405-410), FASTA (which uses the method of Pearson and Lipman (1988) PNAS USA 85: 2444- 2448), or the Smith-Waterman algorithm (Smith and Waterman (1981) J. Mol Biol. 147: 195-197), generally employing default parameters.
- Particular sequence variants may differ from a reference sequence by insertion, addition, substitution or deletion of 1 amino acid, 2, 3, 4, 5-10, 10-20 or 20-30 amino acids.
- PSCs are unspecialized, undifferentiated cells that, are capable of replicating or self-renewing themselves and developing into
- the PSCs are not committed to a
- the PSCs are human pluripotent stem cells.
- PSCs include embryonic stem (ES) cells and non-embryonic stem cells, including foetal and adult somatic stem cells and stem cells derived from non-pluripotent cells, for example induced pluripotent (iPS) cells which are derived from non-pluripotent cells .
- ES embryonic stem
- iPS induced pluripotent
- PSCs may express one or more of the following pluripotency
- pluripotent stem cells express Oct4.
- Human PSCs do not express haematopoietic cell or megakaryocyte markers, such as CD61, CD34, CD41, CD42a, CD42b and GPVI .
- the pluripotent stem cells may have the phenotype CD61-, CD34-, CD41a, CD42a-, CD42b-, GPVI- .
- Markers expressed by a cell may be identified using standard techniques, such as flow cytometry, PGR, western blotting, immunocytochemistry and in situ hybridisation.
- the PSCs are ES cells, for example human ES cells and non-human ES cells.
- Suitable ES cells may be obtained from a cultured hES cell line, such as Edi2, H9 or hSF-6.
- hES cell line such as Edi2, H9 or hSF-6.
- suitable human embryonic ste cells are described in (Thomson JA et al Science 282: 1145-1147 (1998) Reubinoff et al. Nat Biotechnol 18:399-404 (20Q0); Cowan, C.A. et al. N. Engl. J. Med. 35Q, 1353-1356(2004), Gage, F.H., et al . Ann. Rev. Neurosci. 18 159-192 (1995); and Gotlieb (2002) Annu. Rev.
- the PSCs are not hES cells.
- the ES cells may be obtained by methods which do not involve the destruction of a human embryo or the use of a human embryo for an industrial or commercial purpose.
- hES cells may be obtained by biastomere biopsy techniques
- the pluripotent stem cells are iPS cells, for example human iPS cells.
- iPS cells are pluripotent cells which are derived from non- pluripotent ancestor cells, for example somatic cells, such as fibroblasts.
- Ancestor cells are typically reprogrammed into iPS cells through the introduction of reprogramming factors Oct4, Sox2, Klf4 and c-Myc into the cell.
- Reprogramming factors and techniques for the production of iPS cells are well-known in the art and include introducing reprogramming factors by plasmid or viral transfection, direct protein delivery or direct delivery of nucleic acid, such as mRNA.
- reprogramming factors by plasmid or viral transfection, direct protein delivery or direct delivery of nucleic acid, such as mRNA.
- the non-pluripotent ancestor cells for use in the production of iPS cells may be obtained from an individual .
- the individual may be healthy (i.e. without any disease condition) or may have a disease condition.
- iPS cells may be derived from a sample of cells obtained from an individual with a haematological condition, for example a thrombocytopenic or other platelet-related condition, including essential thrombocytosis and congenital amegakaryocytic thrombocytopenia (CAMT) , Thrombocytopenia-absent radius syndrome
- a haematological condition for example a thrombocytopenic or other platelet-related condition, including essential thrombocytosis and congenital amegakaryocytic thrombocytopenia (CAMT) , Thrombocytopenia-absent radius syndrome
- IPS cells obtained from an individual with a haematological condition may be used to generate
- megakaryocyte progenitor cells or mature megakaryocytes using the methods described herein for modelling a haematological condition; for the treatment of an individual with a haematological condition or for the generation of platelets for the treatment of an
- a population of pluripotent stem cells for use in the present methods may be obtained by culturing cells from a pluripotent cell line, using conventional techniques (Vallier, L. et al Dev. Biol. 275, 403-421 (2004) , Cowan, C.A. et al. N. Engl. J. Med. 350, 1353-1356 (2004) ,
- human pluripotent cells suitable for use in the present methods may be conventionally cultured in a culture dish on a layer of feeder cells, such as irradiated mouse embryonic fibroblasts (MEF) , at an appropriate density (e.g.10 5 to 10 6 cells/ 60mm dish), or on an appropriate substrate with feeder conditioned or defined medium.
- feeder cells such as irradiated mouse embryonic fibroblasts (MEF)
- MEF irradiated mouse embryonic fibroblasts
- pluripotent cells for use in the present methods may be passaged by enzymatic or mechanical means - Suitable culture media for human pluripotent cells include SC medium (Knockout Dulbecco' s Modified Eagle' s Medium (KO-DMEM) supplemented with 20% Serum. Replacement, 1% Non-Essential Amino Acids, ImM L-Glutamine, 0. ImM ⁇ -mercaptoethanol and rig/ml to lOng/ml human bFGF) and ES medium (DMEM/F12
- KSR knockout serum replacement
- a population of pluripotent stem cells for use in the present methods is preferably substantially free from one or more other cell types.
- the population of isolated pluripotent stem cells may be expanded.
- the human pluripotent stem cells may be cultured in a monolayer under
- the cells may be cultured in a culture medium supplemented with FGF2 (e.g. 5 to 20 ng/ml FGF2, preferably lOng/ml).
- a culture medium supplemented with FGF2 (e.g. 5 to 20 ng/ml FGF2, preferably lOng/ml).
- Suitable culture media include the SC and ES media described above, which may be MEF- conditioned and supplemented with FGF2.
- FGF2 human fibroblast growth factor 2
- NCBI Gene ID: 2247 nucleic acid sequence MM 002006.3 GI : 41352694, amino acid sequence MP 001997.4 GI :
- FGF2 may be produced using routine recombinant techniques or obtained from commercial suppliers (e.g. R&D, Minneapolis, MM, USA) .
- pluripotent cells are typically cultured and maintained on MEF feeder cells and may be separated from the feeder cells by any suitable technique.
- the cells may be briefly (e.g. one hour) cultured on gelatin, and then the human pluripotent cells, which do not adhere to the gelatin separated from the MEFs which do adhere to the gelatin.
- human pluripotent stem cells have been cultivated in CDM on gelatin coated dishes (Vallier et al Curr Protoc Stem Cell Biol. 2008 Mar; Chapter l.Unit 1D.4.1-1D.4.7) in presence of FGF2 and Activin-A.
- the PSCs may have a defined genotype, such as a defined HLA haplotype .
- the PSCs may be or have been subjected to biological characterisation, such as HLA genotyping .
- a method described herein may comprise providing a population of PSCs having a defined genotype, such as a defined HLA haplotype.
- a population of individuals may be HLA/ABO typed and skin biopsy or peripheral blood from selected individuals in the
- HLA/ABO genotypes may be used to generate iPSC lines for forward programming as described herein. Suitable methods of HLA/ABO typing are well-known in the art. Forward programming is the direct imposition of a more
- a PSC which is forward programmed into a megakaryocyte progenitor does not differentiate through all of the mesoderm progenitor, haemogenic endothelium progenitor and
- a PSC may be
- mesoderm progenitor cell differentiated into a mesoderm progenitor cell as described herein and the mesoderm progenitor cell may be forward programmed into a megakaryocyte progenitor ,
- Mature megakaryocytes are non-proliferative bone marrow cells which are responsible for the production of platelets.
- megakaryocytes may have the phenotype CD34+/-, CD61+, CD41a+,
- Mature megakaryocytes are large (20-100um) polyploid cells (4-128N) which eventually produce platelets through pro- platelet formation. They include megakaryoblast, pro-megakaryocyte and megakaryocyte stages as described in Journal of Thrombosis and Hae ostasis, 5 (Suppl. 1) : 318-327.
- Megakaryocyte progenitor cells are proliferative precursors of mature megakaryocytes which undergo a final differentiation step to form mature megakaryocytes.
- Megakaryocyte progenitors may have the phenotype CD235a +/-, CD34+/-, CD61+ , CD41a+, CD42a ⁇ , CD42b-, GPVI- . They include BFU-MKs (burst forming units-megakaryocytic) , CFU-MKs (colony forming units-megakaryocytic) and PMKBs (promegakaryoblasts ⁇ as described in Journal of Thrombosis and Haemostasis, 5 ( Suppl . 1) : 318-327.
- a megakaryocyte progenitor phenotype may include surface expression of CD235a, CD34, CD61 and CD41a or CD34, CD61 and CD41a and may not include expression of CD42a, CD42b and GPVI.
- PSCs are forward programmed to become megakaryocyte progenitors in the methods described herein through the introduction of a specific combination of transcription factors, which causes the intracellular levels of the transcription factors in the PSCs to be increased.
- the combination of transcription factors may be introduced into the PSCs in the form of nucleic acids (Warren L et al . Cell Stew, Cell. 2010 Nov 5;7 (5) : 618-30) or proteins (Zhou H, et al Cell Stem Cell. 2009 May 8 ; 4 (5 ) : 381- ) by any suitable technique, including plasmid or more preferably, viral transfection, direct protein delivery or direct delivery of nucleic acid, such as mR A.
- the population of treated cells may be cultured.
- the combination of transcription factors for example GATA1, FLU and TALI and optionally one or more additional transcription factors, may be introduced into the PSCs by expressing nucleic acid encoding the combination of transcription factors in the PSCs.
- the nucleic acid may be operably linked to inducible or non-inducible regulatory elements within a suitable vector, for example a retroviral or lentiviral vector, for expression within the cells.
- Vectors containing the nucleic acid are then transfected into the PSCs. Any convenient technique for the transfection may be employed. Following transfection, the combination of transcription factors is expressed in the PSCs and programs the PSCs to become megakaryocyte progenitors .
- transposon-mediated or other random integration transgenesis techniques may be employed. Reprogramming cells through expression of nucleic acid encoding one or more
- the PSCs may be programmed to become megakaryocyte progenitors with minimal or no genetic modification to the cells. Suitable techniques are known in the art and include the use of excisable lentiviral and transposon vectors; repeated application of transient plasmid, episomal and adenovirus or adeno- associated vectors or; the use of small molecules, synthetic mRNA and/or microRNAs (Sidhu KS . Expert Opin Biol Ther. (2011) May;
- the combination of transcription factors may be introduced into the PSCs by contacting transcription factor proteins or transcription factor nucleic acids, such as mRNAs encoding transcription factors, with the population of PSCs.
- transcription factor proteins or transcription factor nucleic acids such as mRNAs encoding transcription factors
- Programming cells though contact with transcription factor nucleic acids (Warren L et al . Cell Stem Cell. 2010 Nov 5;7 (5) : 618-30) or proteins (Zhou H, et al Cell Stem Cell. 2009 May 8 ; 4 (5 ) : 381- ) is well-known in the art and any suitable technique may be employed.
- transcription factor proteins or nucleic acids may be cultured in the presence of the PSCs under conditions which allow for entry of the proteins or nucleic acid into the cell.
- entry of transcription factor proteins into the cell may be
- transcription factor proteins or nucleic acids may be introduced into the PSCs by traditional methods such as lipofeetion,
- bombardment and/or microinjection may be delivered into cells by a protein delivery agent.
- a protein delivery agent for example, the combination of
- transcription factor proteins or nucleic acids can be introduced into cells by covalently or non-covalently attached lipids, e.g. a myristoyl group.
- Transcription factor nucleic acids for direct delivery into PSCs may be translatable by endogenous translation factors within the cell.
- Suitable synthetic mRNAs may be modified. For example, 5- methylcytidine may be substituted for cytidine, and pseudouridine for uridine, followed by phosphatase treatment to produce the transcription factor nucleic acids (Zhou H, et al 2009).
- the combination of transcription factors for example GATA1, FLU and TALI and optionally one or more additional transcription factors, for example one or more transcription factors from Table 1 and/or Table 2
- Suitable techniques for endogenous gene activation include Zinc Finger or Transcription like Activator (TAL) techniques and are well
- the PSCs are forward programmed in a chemically defined medium (CDM) .
- CDM is a nutritive solution for culturing cells which contains only specified components, preferably components of known chemical structure.
- a CDM is devoid of
- a CDM may be humanised and may be devoid of components from non-human animals. Proteins in the CDM may be recombinant human proteins Suitable CDMs are well known in the art and described in more detai1 be 1ow ,
- Media and ingredients thereof may be obtained from commercial sources (e.g. Gibco, Roche, Sigma, Europabioproducts , Cellgenix,
- a humanised CDM for example BSA may be replaced in CDM by Polyvinyl alcohol (PVA), human serum albumin, PlasmanateTM (human albumin, alpha-globulin and beta globulin: Talecris
- Buminate VM human albumin: Baxter
- Suitable CDMs include Knockout (KS) medium supplemented with 4 ng/ml FGF 2 ; Knockout Dulbecco's Modified Eagle's Medium (KO-DMEM)
- Suitable humanised CDMs may comprise a basal culture medium, such as IMDM and/or F12 supplemented with insulin, for example at ⁇ . ⁇ / ⁇ to 7( g/ml, transfer in, for example at a concentration of 1.5p.g/ml to 15Q g/ml, an antioxidant, such as 1-thiolglycerol, for example at a concentration of 45 ⁇ to 4.5mM, lipids, and one or more of human serum albumin, polyvinyl alcohol (PVA) , PlasmanateTM (human albumin, alpha-globulin and beta globulin: Talecris Biotherapeutics NC USA) or BuminateTM (human albumin: Baxter Healthcare) , for example at a concentration of 0.5 mg/ml to 50 mg/ml.
- a basal culture medium such as IMDM and/or F12 supplemented with insulin
- transfer in for example at a concentration of 1.5p.g/ml to 15Q g/ml
- an antioxidant such as
- humanised CDM include humanised Johansson and Wiles CDM, which consists of: 50% IMDM (Gibco) plus 50% F12 NUT-MIX (Gibco) 7 ⁇ / ⁇ 1 insulin; ⁇ / ⁇ transferrin; 5 mg/ml human serum albumin, polyvinyl alcohol (PVA), PlasmanateTM or EliminateTM ; 1% chemically defined lipid concentrate ( Invitrogen) ; and 450 ⁇ 1-thiolglycerol.
- Another suitable chemically defined medium may comprise 50% IMDM, 50% F12 NUT-MIX, lug/nil insulin, 15 ⁇ 9 ⁇ 1 transferrin, 1% chemically defined lipid
- CellGRO SCGM lM which is commercially available (Cellgenix, DE ) .
- the cells may be cultured in a pluripotency cell culture medium, for example CDM with Activin-A and FGF2, or mesodermal cell culture medium, for example CDM supplemented with BMP4 (e.g. rh-BMP4 at. lOng/ml) and/or FGF2 and/or LY294002 for 1 or more, 2 or more, 3 or more, 4 or more, or 5 or more days, preferably about 2 days .
- a pluripotency cell culture medium for example CDM with Activin-A and FGF2
- mesodermal cell culture medium for example CDM supplemented with BMP4 (e.g. rh-BMP4 at. lOng/ml) and/or FGF2 and/or LY294002 for 1 or more, 2 or more, 3 or more, 4 or more, or 5 or more days, preferably about 2 days .
- BMP4 e.g. rh-BMP4 at. lOng/ml
- the cells may then be cultured in an appropriate megakaryocyte (MK) programming medium.
- MK megakaryocyte
- population of cells may be cultured in a chemically defined medium (CDM) supplemented with TPO (Thrombopoietin) and/or SCF (Stem Cell Factor) and /or IL1B, (all preferably recombinant, human proteins) .
- CDM chemically defined medium
- TPO Thrombopoietin
- SCF Stem Cell Factor
- IL1B all recombinant, human proteins
- the reference amino acid sequence of human TPO (Thrombopoietin: also known as THPO: Gene ID 7066) has the NCBI database entry NP 000451.1 GI: 4507493; the reference amino acid sequence of human SCF(Stem Cell Factor: also known as KITLG: Gene ID 4254) has the NCBI database entry NP Q00890.1 GI : 505175 and the reference amino acid sequence of human IL1B (Interleukin 1 beta: Gene ID 3553) has the NCBI database entry NP_000567.1
- TPO, SCF and IL1B may be produced by synthetic or recombinant means or obtained available from commercial suppliers (e.g. R&D Systems, Minneapolis, MINI, USA; Sigma-Aidrich Co. LLC USA, EMD Milli ore MA USA) .
- the pluripotent cells may be cultured by a method comprising ;
- Suitable cell culture conditions are well known in the art. (Vallier, L. et al Dev. Biol. 275, 403-421 (2004), Cowan, C.A. et al . N. Engl. J. Med. 350, 1353-1356 (2004), Joannides, A. et al . Stem Cells 24, 230-235 (2006) Kli anskaya, I. et al. Lancet 365, 1636-1641 (2005), Ludwig,T.E. et al. Nat. Biotechnol. 24, 185-187 (2006)).
- Media and ingredients thereof may be obtained from commercial sources (e.g. Gibco, Roche, Sigma, Europa bioproducts, R&D Systems). Standard mammalian cell culture conditions may be employed, for example 37°C, 21% Oxygen, 5% Carbon Dioxide. Culture medium is preferably changed every two days and cells allowed to settle by gravity.
- the population of pluripotent stem cells may be cultured for at least. 7 days after introduction of the combination of transcription factors .
- Megakaryocyte progenitors may be identified in the cell culture after at least 4, 5, 6, or 7 or more days.
- a method may comprise identifying or confirming the identity of the megakaryocyte progenitor cells or mature megakaryocytes in the culture.
- cells may be tested for presence of cell markers associated with the megakaryocyte progenitor cells, for example to identify or confirm their identity.
- Cells which express the markers may be identified as megakaryocyte progenitor cells.
- megakaryocyte progenitor cells may identified by expression of CD34 and CD41a as described above but no expression of CD42a and CD42b.
- Megakaryocyte progenitor cells do not express the pluripotency associated markers, such as Oct , Sox2, Alkaline Phosphatase, SSEA- 3, anog, SSEA-4 and Tra-1-60, which are expressed by PSCs or display reduced expression relative to PSCs.
- pluripotency associated markers such as Oct , Sox2, Alkaline Phosphatase, SSEA- 3, anog, SSEA-4 and Tra-1-60, which are expressed by PSCs or display reduced expression relative to PSCs.
- a method may further comprise isolating and/or purifying the forward programmed megakaryocyte progenitor cells.
- Megakaryocyte progenitors may be separated from other cell types in the population using any technique known to those skilled in the art, including those based on the recognition of extracellular epitopes by antibodies and/or magnetic beads or fluorescence activated cell sorting (FACS), including the use of antibodies against extracellular regions of characteristic markers .
- FACS fluorescence activated cell sorting
- the megakaryocyte progenitor cells may be cultured and/or expanded to generate a homogenous or substantially homogenous population of cells. Suitable techniques for mammalian cell culture are well known in the art and described elsewhere herein.
- a method may comprise monitoring or detecting the expression of one or more megakaryocyte progenitor cell markers and/or one or more plu.ripot.ent cell markers in cells in the population. This allows the extent, of forward programming in the population to be determined as it is cultured.
- At least 5%, at least 10%, at least 20%, at least 30%, at least 40%, at least 50% or at least 60% of the population of PSCs may become megakaryocyte progenitor cells following forward programming as described herein.
- Megakaryocyte progenitor cells produced by the present methods may be substantially free from other cell types.
- a population of megakaryocyte progenitors produced by a method described herein may contain 80% or more, 85% or more, 90% or more, or 95% or more megakaryocyte progenitor cells, following culture.
- the population of megakaryocyte progenitor cells may be cultured and/or expanded and optionally stored.
- the methods described herein may further comprise allowing the population of megakaryocyte progenitor cells to differentiate into mature megakaryocyte cells, for example by culture in a megakaryocyte maturation medium.
- megakaryocyte progenitor cells may be passaged, for example from day 7 or day 10, into suspension culture plastic dishes in a megakaryocyte maturation medium comprising CDM (e.g. CellGRO SCGMTM) supplemented by TPO and/or ILl-beta and/or SCF; and then cultured for an additional 5-7 days or 5-15 days, up to 10-15 days.
- CDM e.g. CellGRO SCGMTM
- the megakaryocyte progenitor cells may be cultured in a megakaryocyte maturation medium comprising CDM (e.g.
- the cells are cultured for 18 to 22 days from TF
- transduction preferably about 20 days, to produce mature
- the mature megakaryocyte cells may be isolated, purified and/or stored according to standard techniques.
- a population of mature megakaryocyte cells produced by a method described above may be pure or substantially pure and may not require further sorting or purification.
- at least 80%, at least 90% or at least 95% of cells in the population of mature megakaryocyte cells may express CD41a (i.e. CD41a+ cells) .
- At least 30%, at least 40% or at least 50% of cells in the population may express CD42a (i.e. CD 2a+ cells).
- CD42a i.e. CD 2a+ cells.
- at least 95% of cells in the population express CD41a and at least 50% of cells in the population may express CD42a.
- mature megakaryocyte cells produced as
- a method described herein may be used in the production of platelets.
- a method described herein may comprise allowing one or more of the mature megakaryocyte cells to produce platelets.
- Another aspect of the invention provides a population of
- Megakaryocyte progenitor cells produced by forward programming as described herein may be highly proliferative (for example over 28 days or more ) .
- Mature megakaryocyte cells produced by forward programming and differentiation as described herein may generate and/or release functional platelet like particles (PLPs) in vitro .
- PPFs platelet like particles
- Another aspect of the invention provides the use of a population of megakaryocyte progenitor cells or mature megakaryocytes produced as described herein in the production of platelets.
- megakaryocyte progenitor cells or mature megakaryocytes produced as described herein for use in methods of treatment of haematological conditions as described herein and methods of treatment of haematological conditions which comprise administering megakaryocyte progenitor cells or mature megakaryocytes produced as described herein to an individual in need thereof .
- Megakaryocyte progenitor cells or mature megakaryocytes produced as described herein may also be useful in screeni g.
- Screening may include drug or small molecule screening.
- the isolated programmed cells may be contacted with a test compound and the effect of the test compound on the cells is determined.
- Screening may also include functional genomic screening.
- a gene may be suppressed, knocked out or otherwise inactivated in the isolated reprogrammed cells and the effect of the inactivation on the cells determined.
- megakaryocytes cells may be produced from iPS cells as described herein.
- the iPS cells may be derived from normal differentiated cells or from differentiated cells having a disease phenotype or genotype, for example from an individual with a disease condition.
- the megakaryocyte progenitor cells or mature megakaryocytes may express a detectable reporter or display an observable cellular phenotype which differs between disease-affected cells and normal cells.
- the megakaryocyte progenitor cells or mature megakaryocytes may be exposed to test compounds and the effect of the test compound on the reporter expression or observable cellular phenotype determined.
- the one or more genes in the megakaryocyte progenitor cells or mature megakaryocytes may be inactivated, for example by targeted mutation or RNAi suppression, and the effect of the inactivation on the reporter expression or observable cellular phenotype determined. Genes whose inactivation causes the cells to revert from disease cell state to the normal state may be identified.
- Screening may include toxicology screening.
- the isolated megakaryocyte progenitor cells may be contacted with a test compound at various concentrations that mimic abnormal /normal concentrations in vivo. The effect of the test compound on the cells may be determined and toxic effects identified.
- Toxicology screening is well known in the art (see for example Barbaric I et al. Biochem Soc Trans. 2010 Aug; 38 ( ⁇ : 10 6-50 ) .
- Forward programmed megakaryocyte progenitor cells and cells derived from the programmed cells, such as mature megakaryocytes and platelets) may also be used for the treatment of an individual, for example for the treatment of a platelet or megakaryocyte related condition. The individual may be the same individual from whom the original IPS cells were obtained.
- the forward programmed megakaryocyte progenitor cells or mature megakaryocytes may, for example, be admixed with a pharmaceutical acceptable carrier in a pharmaceutical composition.
- the composition may be administered to the individual ((Leukemia. 2008 Jan; 22 (1) :203-8) .
- Forward programmed megakaryocyte progenitor cells and cells derived from the programmed cells, such as mature megakaryocytes, may also be used for disease modelling. For example, cells may be programmed into megakaryocyte progenitors which are affected in a disease condition, either directly or by differentiating into the affected megakaryocytes or platelets.
- Another aspect of the invention provides a method of screening for compound useful in the treatment of a disease condition, in particular a haematological condition, for example a
- thrombocytopenic or other platelet-related condition including essential thrombocytosis, congenital amegakaryocytic
- thrombocytopenia (CAMT) , Thrombocytopenia-absent radius syndrome
- TIP Bernard Soulier syndrome
- GPS Gray platelet syndrome
- G1anzmann throrabasthenia comprising;
- Suitable forward programmed megakaryocyte progenitor cells are described above.
- pathologies in the reprogrammed cells may be determined.
- test reprogrammed cells in the presence, relative to the absence of test compound is indicative that, the test, compound may be useful in the treatment of the disease in the individual.
- the forward programmed megakaryocyte progenitor cells may display a normal phenotype and the effect of the test compound on the growth, differentiation or viability of the reprogrammed cells or the ability of the reprogrammed cells to perforin, one or more cell functions may be determined.
- cells may be modified to express reporters that can be used to measure particular cell functions or attributes. A decrease in growth, viability or ability to perform one or more cellular functions may be indicative that the compound has a cytotoxic effect (see for example, Barbaric I et al Biochem Soc: Trans. 2010 Aug; 38 ( ): 1046-50) .
- HGNC Lature Committee
- Figure 1 shows the internal biological interactions of the top 20 TF candidates identified using VisANT, highlighting the 9 tested genes in this study (in dark) and the GA A centred network (grey shade). Tested combinations are indicated in the adjacent table.
- Figure 2 shows a comparison between 14TF and 9TF combinations for MK-FoP of the H9 ES line (hESC#l) .
- Figure 3 shows transgene expression levels quantified by RT-QPCR in flow cytometry sorted CD41a+ cells generated 7 days after lentiviral transduction of the hESC#l line with the 9 TFs on fibronectin coated plates and maintained in pluripotent medium ( FGF2+Activin-A) for 2 days followed by MK medium (TPO+SCF) for 5 days.
- FGF2+Activin-A pluripotent medium
- TPO+SCF MK medium
- Figure 5 shows the fold increase of CD41a+ cells relative to the 9- TFs in hESC#l cells transduced with different combinations of TFs under pluripotent conditions without mesoderm induction and measured by flow cytometry at day 7. 3TFs combination is shown as the most effective for MK-FoP.
- Figure 7 shows real time quantitative PGR analysis of MK gene expression at day 7 in an unsorted population: HES3 (hESC#2) ESC line before and after forward programming protocol (21% CD 1a+ at day7 ) .
- ES pluripotent ESC line;
- GFP GFP transduced cells were cultivated in the same conditions as for 3TFs transduced cells,
- FIG 8 shows the megakaryocytic potential of cells sorted by flow cytometry based on CD41a expression at day7 following transduction of hiPSC#2 line with the 3-TFs combination.
- the megakaryocytic potential of sorted cells was tested using the Megacult clonogenic assay (1,000 cells in duplicate).
- a representative megakaryocyte colony obtained from a CD41a+ cell and co-expressing CD41a and CD42b as detected by immunofluorescence is shown.
- Figure 9 shows real-time quantitative PGR analysis of MK gene expression at day 7 in sorted populations following forward
- Figure 10 shows a time course flow analysis of the mean values +/- SD of surface marker expression using forward programming protocol on the hiPSC#l and #2 lines.
- Figure 11 shows the results of cytospin and Romanowsky staining: polyploid MK are produced from, forward programmed hiPSC#l and#2 lines (BOB and BBHX ) and are similar to cord blood derived MKs .
- Figure 12 shows the percentages of CD41a expressing cells produced when human pluripotent stem cells sown on fibronectin coated plates were transduced in parallel with the 3-TFs and kept for 2 days in pluripotent ( FGF2+Act.ivin-A) or mesoderm (FGF2+BMP4+LY294002) medium followed by MK medium. (TPO+SCF) for 6 days.
- Figure 14 shows the morphology of day20 hiPSC-MKs and CB-MKs analysed after Romanowsky staining. Arrowheads point to cells showing several nuclei. Scale bars, lOOu .
- Lower panel shows cell fold expansion at day20 for total and mature megakaryocytes (CD41a and
- Figure 16 shows histograms representing the amount of PLPs generated per hiPSC-MK input after hiPSC#l day 20 MKs were sowed in parallel on different stromal cell lines .
- Table 1 shows 46 candidate TPs selected upon analysis of protein- protein interaction network using VisANT software, integrating interactions with chromatin remodelling factors and level of gene expression. 14 transcription factor candidates cloned into
- lentiviral vector backbones are highlighted.
- Table 2 shows 13 TPs identified from differential expression between cord blood or peripheral blood derived megakaryocytes and hiPSC-MKs
- Table 3 shows an enrichment analysis for biological processes using the DAVID bioinformatics resource which indicates significant enrichment for megakaryocyte/platelet function genes in hiPSC-MKs compared to the starting hiPSCs .
- the human embryonic stem cell lines HES3 and H9 (from ES Cell
- iPSC lines #1-4 A1ATD1 , BBHX8, iPS40 and S4-SF5 respectively, obtained from the Cambridge Biomedical Research Centre iPSC Core
- CDM chemically defined basal medium
- Activin-A (15ng/ml, University of Cambridge) on feeder free gelatin coated wells as previously described ⁇ Curr Protoc Stem Cell Biol, 2008 Mar; Chapter l:Unlt ID , 4.1-lD .4 , 7) with medium changes daily.
- Subculture is performed every 5-7 days by detaching pluripotent colonies by incubation in a dispase/collagenase-IV mix ( Img/ml , Sigma Aldrich) for 45 minutes at 37°C, collecting detached colonies, breaking them down into small clumps carefully pipetting up and down with a P1000 tip and plating them onto new gelatin coated plastic dishes .
- iPSC line derivation has been performed under appropriate ethical approval and volunteer consent were obtained (Ethics reference no. 08/H0311/201; R&D no. A091485) .
- the iPSC lines have been derived from adult dermal fibroblasts using murine
- oncoretroviral vectors hiPSC #1-3) or Sendai vectors (hiPSC #4) expressing the human OCT4, SOX2 , KLF4 and MYC reprogramming factors and following subculture steps on irradiated mouse embryonic feeder cells in 20% SR medium supplemented by rh-FGF2 as previously described .
- Embryoid body (EB) formation was initiated with 5x10 ' to lx 10' viable cells per well of an AggrewellTM400 plate (Stemcell Technologies, France) in order to obtain embryoid bodies (EB) of 400 to 800 cells per EB following spin aggregation (detailed protocol in AggrewellTM Technical manual ⁇ .
- lentiviral transduction was performed concomitantly to the aggregation phase. Briefly, cells were added to the well in CDM supplemented by Y-27632 (lOmicroM, Sigma Aldrich) , rh-BMP4 (lOng/ l, R&D) and protamine sulfate (10pg/ml, Sigma) . Concentrated lentiviral vectors individually coding for each forward programming factor were added to the well to MOI20 (multiplicity of infection) .
- EBs were collected and sowed in ultralow adherent cell culture plates (Corning) at a density of 600 EB per 10cm2 dish in CDM supplemented with s rh-BMP4 (lOng/ml, R&D) and rh-FGF2 (5ng/ml, University of Cambridge). EBs were collected 24 hours later (day2) and further cultivated in ultralow adherent plates in Cellgro SCGM medium (Cellgenix, Germany) supplemented with rh-TPO (lOOng/ml, Cellgenix) and rh-SCF (25ng/ml, Life Technologies). At daylO, EBs were dissociated to single cells using CollagenaselV and Dispasell (Img/ml, Gibco) followed by enzyme free cell
- Adherent cell protocol Small cell clumps were generated from sub- confluent hPSC cultures using a CollagenaselV/Dispasell mix (lmg/ml) and sowed on human fibronectin coated (50ug/ml, Millipore) tissue culture plates in CDM with FGF (12ng/ml) and Activin-A (15ng/ml) at an approximated density of 2-5E+5 cells,/10cm2. Cells were transduced the day after with MOI20.
- the culture media used for the first two days were devised for pluripotency maintenance (as above) or mesoderm induction (FLyB; Bernardo et al.Cell Stem Cell. 2011 Aug 5; 9 (2) : 144-55) depending on experiments.
- the following days, cells were maintained in Cellgro SCGM supplemented with TPO (lOOng/ml) and SCF (25ng/ml) until analysis.
- CDS4-positive cells ( ⁇ 98%) isolated by magnetic cell sorting ⁇ Miltenyi Biotec) were seeded at 1E+5 cells/ml in Cellgro SCGM with TPO (lOOng/ml) and ILl-beta (lOng/ml) and incubated for 10 days.
- TPO laoxyribonuclear protein
- ILl-beta ILl-beta
- CollagenaselY/Dispasell and/or enzyme free dissociation buffer when needed Cells were stained for 20-30' at room, temperature in PBS 0.5%BSA. 2mM EDT.A. using combinations of FITC, PE and APC conjugated antibodies (all from BD Pharmingen except anti-GP6 antibody from NHSBT-Brlstol) . Background fluorescence was set against matched isotype control antibodies and compensation matrix defined using single-colour stained cells. Flow count beads (Flow count
- MKs were cultivated on human fibrinogen coated (50ug/ml, Millipore) tissue culture plates for 48 hours to monitor proplatelet formation.
- Cells were fixed with 2% PFA and permeabilised/blocked with 0.1% Saponin/0.2% Gelatin.
- Cells were incubated with primary antibodies (anti alpha-Tubulin, Sigma ⁇ anti vwf, Dako; anti P-selectin, NHSBT- Bristol) at room temperature for 2 hours and secondary antibodies conjugated with Cy3 or A.lexa-488 fluorochromes ⁇ Invitrogen Molecular Probes) for 45 minutes.
- Cell nuclei were stained with DAP I before image acquisition on a confocal Zeiss Axiovert 200M microscope.
- MKs were fixed in 2% glutaraldehyde 0.1M phosphate buffer for 60' at room temperature. After washing with phosphate buffer, the samples were post-fixed with 1% osmium tetroxide in phosphate buffer for 60' on ice, ethanol dehydrated and infiltrated with and embedded in lipoxy resin. Ultrathin sections (50nm) were cut and stained with 2% uranyl acetate in methanol and Reynolds' lead citrate. Samples were read using a FBI Tecnai 12 (Philips) transmission electron
- cD A was prepared from 250 -500ng RNA using Maxima First Strand cD A Synthesis Kit and random hexamers (Fennentas) .
- QPCR reactions were performed in duplicates using recommended SYBR green based PGR mixes on ⁇ 7500HT or Mx30Q0P real time thermal cyclers using 2-step amplification protocols ⁇ Applied Biosystems, Agilent Technologies) ⁇ Relative gene expression was calculated with the 2 "aelt ° c ⁇ method using HMBS for normalisation.
- Primer pairs were designed to amplify cDNA only, have no reported off targets after blasting against human Refseq and showed 80-120%PCR efficiencies.
- Endogene specific primers were designed to amplify UTR regions absent from transgene sequences while transgene specific primer pairs have 3' primers binding to viral sequences.
- RNA free total RNA was extracted from sorted CD42b+ cells (EasySEP, Stem cell Technologies; >95% purity) and 500ng were hybridized to Illumina Human HT-12 v4 BeadArrays , Data import.
- Raw Illumina bead-level output was imported to the R statistical programming environment using functions of the beadarray package for the Bioconductor software suite. Data processing. Signal intensities were background corrected, summarized and converted to log2
- Probe-sets without signal deemed significantly above background level in all profiles of at least one sample group were removed.
- Quantile normalization implemented in the li ma package for Bioconductor, was employed to equalize summarized expression intensity distributions across all sample profiles. Probe sets were annotated to gene targets using information available from the manufacturer. Data analysis . The statistical overrepresentation of gene categories among genes deemed differentially expressed between sample group profiles was assessed using the DAVID bioinformatics resource.
- Gene set enrichment analyses were performed using web tools from the Broad Institute using Hae Atlas data as input gene set. Differential gene expression between two sample groups was assessed through the output of a moderated t-test and significance P-values obtained converted to corrected q-values using the FDR method.
- daylO CB and day20 hiPSC derived MKs were further cultivated for 48h in Cellgro SCGM on gamma-irradiated stromal cells (OP9, ATCC CRL2749; C3H10T1/2, Riken Institute ⁇ HBMEC, courtesy of Dr. Weksler) sowed on gelatine coated tissue culture plates at 1E+4 cells/cm 2 .
- OP9 gamma-irradiated stromal cells
- Washed platelet preparation Human platelet rich plasma (PRP) and hiPSC PLPs collected as above were washed twice in pH7.4 modified Tyrode-HEPES buffer (lOmM HEPES, 12mM NaHC03, 138mM NaCl, 5.5mM glucose, 2.9mM KC1, and ImM MgC12 ) using 800g/10' centrifugation steps after an initial addition of prostaglandin El (1 M) and apyrase (lU/ml) to prevent activation. Washed platelet counts were subsequently determined by flow cytometry.
- PRP Human platelet rich plasma
- hiPSC PLPs collected as above were washed twice in pH7.4 modified Tyrode-HEPES buffer (lOmM HEPES, 12mM NaHC03, 138mM NaCl, 5.5mM glucose, 2.9mM KC1, and ImM MgC12 ) using 800g/10' centrifugation steps after an initial addition of prostaglandin El (1 M)
- Thrombus formation in laminar flow A defined amount of washed platelets or PLPs are mixed with 1ml of mouse blood collected in ACD and the participation of human platelets to collagen induced mouse thrombi subsequently monitored by immunofluorescence. The procedure was modified from Auger JM, ATVB, 2008. Briefly, glass slides were locally coated with Honti collagen spots (lOQug/ml) and mounted into a flow chamber placed under a fluorescent microscope (EVOS system, Advanced Microscopy Group) . The blood was then perfused through the chamber at 1600s-l (7.2ml/hr) for 3 minutes allowing thrombi formation on collagen spots.
- Honti collagen spots lOQug/ml
- EVOS system Advanced Microscopy Group
- cultivated cells are treated by TRIzol and RNA extracted from the aqueous phase following published protocol (Life Technologies).
- RNA is extracted and purified using Qiaprep RNeasy mini columns (Qiagen) including an on column DNA digestion step. Subsequently, cDNA is synthesized from
- RNA 250-50Qng of purified RNA using the Maxima Reverse Transcriptase kit and random hexamers (Fermentas) .
- the PGR reaction is performed using a SYBR green based PCR mix (Applied Biosysterns, FastSYBR green) on a real time thermal cycler analyser (ABI 7500HT) following a fast 2- step amplification protocol.
- Relative gene expression quantification is calculated using the 2 " cc method using HMBS endogene expression as a reference.
- Primer pairs specific for any given gene has been carefully design using the NCBI primer design website in order to be separated by at least one intron on the corresponding gDNA and with no identified potential off target after a BLAST on the human RefSeq repository.
- Primer pair specific for endogene expression has been designed in the 5' or 3'UTR of corresponding transcript.
- Primer pair specific for transgene expression are made of a reverse primer specific for the lentiviral backbone and a forward primer specific for a given transgene.
- Cell morphology is observed after sedimentation on a glass slide by cytospin (400g/5min, 2,000-20,000 cells per slide) and Romanowsky staining ( Eosin/Methylene blue) after Methanol fixation.
- MK-FoP megakaryocyte forward programming
- the CD41a+ population (9TFs forward-programmed cells) was then flow sorted at day 7 and individual transgene expression measured by RT- QPCR. Expression of all 9 TFs was detected in the CD41a negative cell population.
- CD41a expressing cells showed a clear dominance in GATAl, FLU and TALI transgene expression providing indication that the combined expression of these 3 TFs was instrumental in the differentiation process (Fig.3). Indeed, the 3-TFs combination showed a better
- hPSCs were dissociated with
- Collagenase IV in order to generate small cell clumps subsequently seeded on human fibronectin coated plates (around 5E+5 cells per 10cm2) - The day after (dayO) , cell clumps were transduced by lentiviral vectors expressing t GATA1 , TALI and FLI1, using MOI20 in presence of protamine sulfate. Cells were kept in pluripotency medium (chemically defined with Activin-A and FGF2 ) for two days, then in MK medium (chemically defined with TPO and SCF) for five days .
- pluripotency medium chemically defined with Activin-A and FGF2
- MK medium chemically defined with TPO and SCF
- hPSCs were seeded as single cells after dissociation by TrypLE and allowed to attach on fibronectin coated plates in pluripotency medium supplemented with rock
- inhibitor Y-27632 (inhibition apoptosis) for 24 hours before transduction.
- cells were cultivated in mesoderm inducing conditions (FGF2, BMP and LY294002) for the first two days, then in MK medium (chemically defined with TPO and SCF) for five days .
- Another modified MK-FoP protocol which achieved the best cell yield, used an embryoid body culture approach in chemically defined conditions (Fig 9).
- dayO transduction day
- sub- confluent (50- 80%) human pluripotent stem cells in pluripotency medium are dissociated to single cells using TrypLE (Life Technologies ⁇ for 5 min at 37°C and viable cells counted on a haemocytometer .
- Desired amount, of cells e.g. 1E+6 cells
- AggrewellTM400 plates Stem Technologies, France
- transduction is performed concomitantly to the aggregation phase. Briefly, cells are added to the well in CDM supplemented by Y-27632 (lOuM, Sigma Aldrich) , rh-BMP4 (lOng/ml, R&D) and protamine sulfate (8ug/ml, Sigma). Concentrated lentiviral vectors individually coding for each forward programming factor are added to the well to MOI20 (multiplicity of infection) (2E+7 TU) . Subsequently, AggrewellTM plates are centrifuged at lOOg for 3minut.es and put into the incubator (37C/5%C02) for 24 hours.
- MOI20 multiplicity of infection
- Transduced EB are collected the day after and rinse twice with PBS before being seeded in ultralow adherent cell culture plates (Corning) at a density of 600 EB per 10cm2 dish in CDM plus rh-BMP4 (lOng/ml, R&D) and rh-FGF2 (5ng/ml, University of Cambridge) (i.e. mesoderm induction medium). Twenty four hours later, EB are collected, rinse with PBS and further cultivated in ultralow adherent plates in Cellgro SCGM medium
- thrombopoietin (TPO) receptor coding for the thrombopoietin (TPO) receptor
- ZFPM1, RUNX1 and late differentiation markers like NFE2, MEIS1 and MEF2C as well as endogenous expression of GATA1, TALI and F'LIl
- Fig 7 functional megakaryocyte progenitors were limited to the CD41a+ population at day 7 as demonstrated by clonogenic colony forming assays (Fig 8 ⁇ . Indeed, these cells were found to be able to form mature MK colonies expressing CD41a and CD42b in semi-solid collagen cultures; interestingly, CD41a- cells did not. show such potential.
- key MK gene expression was shown to be restricted to the CD41+ cell population at day7 ( Figure 9) .
- optimised chemically defined protocol comprising viral transduction of spin aggregated EBs at day 0, culture in mesoderm medium comprising FGF2 and BMP4 and LY294002 for two days after viral transduction; culture in MK medium comprising TPO and SCF until day 10 and dissociation of embryoid bodies showing cystic structures and actively growing cell aggregates to single cells at daylO and further cultivated in MK maturation medium (TPO+ILlb) for an additional 10 days, we analysed megakaryocyte maturation of 3-TF forward programmed hiPSCs compared to cord blood derived
- the maturation marker CD42b (glycoprotein lb, part of the MK specific GPIb/V/IX receptor complex) over cultivation time mimicking normal megakaryocyte differentiation.
- pluripotent stem cells showed a significant enrichment for
- Platelet production happens by a process of proplatelet formation by mature MKs, Immunofluorescence analysis of hiPSC forward programmed day 20 megakaryocytes cultivated for an additional 48 hours on fibrinogen coated plates showed pro-platelet like cytoplasmic protrusions in vitro showing bulbous structures expressing von Willebrand factor (vwf) and P-selectin along alpha-tubulin positive cytoplasmic filaments, von Willebrand factor (vwf) and P-selectin which are key proteins embedded in platelet granules .
- vwf von Willebrand factor
- vwf von Willebrand factor
- P-selectin which are key proteins embedded in platelet granules
- PLPs platelet -like particles
- Activated platelets co-expressing CD41a and P- selectin on their surface were also identified. This shows that the hiPSC derived PLPs in formed mouse platelet, clots displayed granule content, on their surface, demonstrating functional activation.
- CD42a+ CD42a+
- An additional benefit, of the protocol described above is the use of suspension culture only (embryoid bodies followed by single cells) which greatly reduces the footprint of the experiment and should facilitate its transfer to large scale production systems .
- a mesoderm inducing treatment concomitant to transgene expression was found to be beneficial to forward programming, providing indication that, the epigenome and /or transcriptional profile of mesoderm cells were more amenable to respond to the programming factors.
- the forward programming happens very rapidly since markers of MK commitment are detected as early as four days after 3 TFs transduction, the MK potential is restricted from day 7 to the CD41a+ population and cells show an early dependency to
- ABLIM1 Actin binding LIM 3983 NP 001003407.1 G1 : 51173713 protein 1
- VDR Vitamin D (1,25- 7421 NP 000367.1 GI: 4507883
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| US9382531B2 (en) * | 2012-10-22 | 2016-07-05 | Wisconsin Alumni Research Foundation | Induction of hemogenic endothelium from pluripotent stem cells |
| CA2896053A1 (en) | 2012-12-21 | 2014-06-26 | Ocata Therapeutics, Inc. | Methods for production of platelets from pluripotent stem cells and compositions thereof |
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| US20180237797A1 (en) * | 2015-03-30 | 2018-08-23 | Jeffrey Thomas Loh | Methods for in vitro production of platelets and compositions and uses thereof |
| CN105002143B (en) * | 2015-08-19 | 2018-12-14 | 湖南光琇高新生命科技有限公司 | A kind of inductive pluripotent stem cells Induction of committed differentiation is the method for vascular endothelial-like cell |
| CA3009225A1 (en) * | 2015-12-23 | 2017-06-29 | Monash University | Cell reprogramming |
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